Literature DB >> 21750906

The fiber orientation in the coronary arterial wall at physiological loading evaluated with a two-fiber constitutive model.

Arjen van der Horst1, Chantal N van den Broek, Frans N van de Vosse, Marcel C M Rutten.   

Abstract

A patient-specific mechanical description of the coronary arterial wall is indispensable for individualized diagnosis and treatment of coronary artery disease. A way to determine the artery's mechanical properties is to fit the parameters of a constitutive model to patient-specific experimental data. Clinical data, however, essentially lack information about the stress-free geometry of an artery, which is necessary for constitutive modeling. In previous research, it has been shown that a way to circumvent this problem is to impose extra modeling constraints on the parameter estimation procedure. In this study, we propose a new modeling constraint concerning the in-situ fiber orientation (β (phys)). β (phys), which is a major contributor to the arterial stress-strain behavior, was determined for porcine and human coronary arteries using a mixed numerical-experimental method. The in-situ situation was mimicked using in-vitro experiments at a physiological axial pre-stretch, in which pressure-radius and pressure-axial force were measured. A single-layered, hyperelastic, thick-walled, two-fiber material model was accurately fitted to the experimental data, enabling the computation of stress, strain, and fiber orientation. β (phys) was found to be almost equal for all vessels measured (36.4 ± 0.3)°, which theoretically can be explained using netting analysis. In further research, this finding can be used as an extra modeling constraint in parameter estimation from clinical data.

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Year:  2011        PMID: 21750906     DOI: 10.1007/s10237-011-0331-1

Source DB:  PubMed          Journal:  Biomech Model Mechanobiol        ISSN: 1617-7940


  3 in total

1.  Uncertainty quantification and sensitivity analysis of an arterial wall mechanics model for evaluation of vascular drug therapies.

Authors:  Maarten H G Heusinkveld; Sjeng Quicken; Robert J Holtackers; Wouter Huberts; Koen D Reesink; Tammo Delhaas; Bart Spronck
Journal:  Biomech Model Mechanobiol       Date:  2017-07-28

2.  A novel technique for the assessment of mechanical properties of vascular tissue.

Authors:  Stefan N Sanders; Richard G P Lopata; Lambert C A van Breemen; Frans N van de Vosse; Marcel C M Rutten
Journal:  Biomech Model Mechanobiol       Date:  2020-01-24

3.  Towards patient-specific modeling of coronary hemodynamics in healthy and diseased state.

Authors:  Arjen van der Horst; Frits L Boogaard; Marcel van't Veer; Marcel C M Rutten; Nico H J Pijls; Frans N van de Vosse
Journal:  Comput Math Methods Med       Date:  2013-03-04       Impact factor: 2.238

  3 in total

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